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Full text of "Monthly performance report : Stewart-Teele-Mitchell"

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SOLAR/1018-79/05 

Monthly 

Performance 

Report 



STEWART-TEELE-MITCHELL 
HAY 1979 



U.S. Department of Energy 



National Solar Heating and 
Cooling Demonstration Program 

National Solar Data Program 




NOTICE 

This report was prepared as an account of work sponsored by the United States 
Government. Neither the United States nor the United States Department of Energy, nor 
any of their employees, nor any of their contractors, subcontractors, or their employees, 
make any warranty, express or implied, or assume any legal liability or responsibility for 
the accuracy, completeness or usefulness of any information, apparatus, product or 
process disclosed, or represents that its use would not infringe privately owned rights. 



MONTHLY PERFORMANCE REPORT 
STEWART-TEELE-MITCHELL 
MAY 1979 
I. SYSTEM DESCRIPTION 

The Stewart-Teele-Mitchell site is a single-family residence in Malta, New York, 
The home has approximately 1900 square feet of conditioned space. Solar 
energy is used for space heating the home and preheating domestic hot water 
(DHW). The solar energy system has an array of flat-plate collectors with a 
gross area of 432 square feet. The array faces south at an angle of 45 
degrees to the horizontal. A glycol/water solution is the transfer medium 
that delivers solar energy from the collector array to a heat exchanger. 
Water is then used as the transfer medium that delivers solar energy from 
the heat exchanger to storage, and to the space heating and DHW loads. Solar 
energy is stored in the basement in a 1000-gallon insulated tank. Preheated 
city water is stored in a 75-gallon preheat tank and supplied, on demand, to 
a conventional 40-gallon DHW tank. When solar energy is insufficient to 
satisfy the space heating load, an oil-fired furnace provides auxiliary 
energy for space heating. Similarly, an electrical heating element in the 
DHW tank provides auxiliary energy for water heating. The system, shown 
schematically in Figure 1, has five modes of solar operation. 

Mode 1 - Col lector- to-Storage : This mode activates when the collector tempera- 
ture exceeds the storage temperature by 20°F and terminates when a temperature 
difference of 3°F is reached. Solar energy is transferred through the heat 
exchanger that transmits energy from the solar collection loop to the storage 
loop. Collector loop pump PI and storage loop pump P2 are operating. 

Mode 2 - Collector-to-Space Heating : This mode activates when mode 1 condi- 
tions are satisfied and there is a demand for space heating. The collected 
solar energy bypasses storage and flows directly to the solar heating coil in 
the air-handling system. Mode diversion valve V2 is open. 




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Mode 3 - Storage-to-Space Heating : This mode activates when there is a 
demand for space heating, the temperature at the top of the storage tank 
exceeds 100°F, and solar energy from the collector is not available. Pump P3 
is operating. 

Mode 4 - Storage-to-DHW Tank : This mode activates when the temperature at 
the top of the storage tank exceeds the preheat tank water temperature by 
10°F. Pump P4 is operating. 

Mode 5 - Summer Mode, Collector-to-Vent : This mode activates when the col- 
lector array output fluid temperature exceeds 220°F. The collected solar 
energy is rejected through a fintube heat exchanger located outside the 
dwelling. Valve VI directs the collector loop flow through a purge unit. 



II. PERFORMANCE EVALUATION 



INTRODUCTION 

The site was occupied in May and the solar energy system operated contin- 
uously during the month. Total solar energy collected was 5.0 million Btu 
and the total solar energy used was 1.5 million Btu or 30 percent of the 
collected energy. The stored energy decreased by 0.014 million Btu and the 
total system losses amounted to 4.0 million Btu. Solar energy satisfied 
79 percent of the DHW requirements and 71 percent of the space heating require- 
ments. The solar energy system provided an electrical savings of 0.24 mil- 
lion Btu and a fossil fuel energy savings of 1.1 million Btu. 



WEATHER CONDITIONS 

During the month, total incident solar energy on the collector array was 
20.3 million Btu for a daily average of 1514 Btu per square foot. This was 



above the estimated average daily solar radiation for this geographical area 
during May of 1398 Btu per square foot for a south-facing plane with a tilt 
of 45 degrees to the horizontal. The average ambient temperature during May 
was 60°F as compared with the long-term average for May of 58°F. The number 
of heating degree-days for the month (based on a 65°F reference) was 187, as 
compared with the long-term average of 253. The number of cooling degree-days 
was 35, as compared with the long-term average of 27. 



THERMAL PERFORMANCE 

Syst em - During May the solar energy system performed somewhat poorer than 

expected. The expected performance was determined from a modified f-chart 

analysis using measured weather and subsystem loads as input. Solar energy 

used by the system was estimated by assuming that all energy collected would 

be applied to the load. Actual solar energy used was 1.5 million Btu versus 

an estimated 2.0 million 6jtjgitizedJbyttff$ Ita&rhk^ifolvef raction was 74 percent 

versus an estimated 100 perc&n3Q12 with funding from 
University of Florida, George A. Smathers Libraries with support from LYRASIS and the Sloan Foundation 

Collector - The total incident solar radiation on the collector array for the 
month of May was 20.3 million Btu. During the period the collector loop was 
operating, the total insolation amounted to 15.8 million Btu. The total 
collected solar energy for the month of May was 5.0 million Btu, resulting in 
a collector array efficiency of 25 percent, based on total incident insolation. 
Solar energy delivered from the collector array to storage was 4.3 million 
Btu, while solar energy delivered from the collector array directly to the 
loads amounted to 0.023 million Btu. Energy loss during transfer from the 
collector array to storage and loads was 0.67 million Btu. This loss repre- 
sented 13 percent of the energy collected. Operating energy required by the 
collector loop was 0.20 million Btu. 

Storage - Solar energy delivered to storage was 4.3 million Btu. There were 
1.9 million Btu delivered from storage to the DHW and space heating subsystems. 



http://archive.org/details/monperfo7897unit 



Energy loss from storage was 2.4 million Btu. This loss represented 56 per- 
cent of the energy delivered to storage. The storage efficiency was 44 percent: 
This is calculated as the ratio of the sum of the energy removed from storage 
and the change in stored energy, to the energy delivered to storage. The 
•average storage temperature for the month was 133°F. 

D HW Load - The DHW subsystem consumed 0.84 million Btu of solar energy and 
0.17 million Btu of auxiliary electrical energy to satisfy a hot water load 
of 0.50 million Btu. The solar fraction of this load was 79 percent. Losses 
from the DHW subsystem were 0.51 million Btu. The DHW subsystem consumed a 
total of 0.074 million Btu of operating energy, resulting in an electrical 
energy savings of 0.46 million Btu. A daily average of 27 gallons of DHW was 
consumed at an average temperature of 131°F delivered from the tank. 

S pace Heating Load - The space heating subsystem consumed 0.69 million Btu of 
solar energy and 0.28 million Btu of auxiliary thermal energy (equivalent to 
0.40 million Btu of auxiliary fossil fuel energy) to satisfy a space heating 
load of 0.96 million Btu. The solar fraction of this load was 71 percent. 
The space heating subsystem consumed a total of 0.060 million Btu of operating 
energy, resulting in an electrical energy expense of 0.016 million Btu. 



OBSERVATIONS 

A detailed analysis indicates that the solar energy system was capable of 
satisfying the entire space heating load during May and the entire DHW load 
for all but four days in May; however, the space heating control system 
usually activated the oil-fired furnace concurrently with the solar space 
heating mode. Of the 25 times when solar energy contributed to the space 
heating load, the oil-fired furnace activated on 14 of those occasions 
(during mode 3 operation). When the furnace was activated storage tempera- 
tures were 141°F, 117°F, 135°F, 125°F, 130°F, 115°F, 125°F, 130°F, 158°F, 
138°F, 138°F, 130°F, 113°F, and 117°F. On nine occasions during mode 3 
operation, the oil-fired furnace did not activate. Solar storage tempera- 
tures were 151°F, 139°F, 133°F, 124°F, 121°F, I20°F, 112°F, 127°F, and 99°F, 



The oil-fired furnace did not activate on the two occasions when the solar 
energy system operated in mode 2. The furnace activated only once when the 
solar energy system was inactive and the storage temperature at that time was 
115°F. 

The temperature of the water in the solar preheat tank equalled or exceeded 
the temperature of the water leaving the conventional electrical (auxiliary) 
DHW tank every time there was a demand for hot water (for 26 out of 31 days 
in May); yet, some electrical energy was used to heat DHW on all but five 
days in May. The design of the DHW subsystem is not compatible with the 
small hot water demand at this site: Much of the electrical energy used 
serves only to maintain the temperature of the water in the conventional DHW 
tank at a preset value which is often below that of the solar-heated water in 
the preheat tank. 

Insufficient data were recorded to permit computation of daily performance 
during four days in May. 



ENERGY SAVINGS 

The solar energy system provided a net fossil fuel energy savings of 1.1 mil- 
lion Btu and 0.24 million Btu of electrical energy. The DHW subsystem pro- 
vided an electrical energy savings of 0.46 million Btu, while the space 
heating subsystem contributed a fossil fuel energy savings of 1.1 million Btu 
at an electrical energy expense of 0.016 million Btu. The energy collection 
and storage subsystem incurred an electrical energy expense of 0.20 million 
Btu. 



III. ACTION S TATUS 

Outstanding sensor anomalies are minor, and at present, no site visit is 
scheduled to correct them. 



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UNIVERSITY OF FLORIDA 



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UNIVERSITY OF FLORIDA 



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